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Updated: Jan 21, 2026

In vitro Assessment of Aortic Regurgitation Using Four-Dimensional Flow Magnetic Resonance Imaging
Published on: February 25, 2022
Evaluation of 4D flow MRI-based non-invasive pressure assessment in aortic coarctations
Simone Saitta1, Selene Pirola2, Filippo Piatti3
1Department of Electronics Information and Bioengineering, Politecnico di Milano, Milan, Italy; Department of Chemical Engineering, Imperial College London, London, UK.
Insights
This study validates a new non-invasive method using 4D flow MRI to accurately assess aortic coarctation pressure drops. The 4DF-FEPPE algorithm shows excellent agreement with simulations, supporting its clinical use.
Area of Science:
- Cardiovascular Imaging
- Medical Physics
- Computational Fluid Dynamics
Background:
- Aortic coarctation (CoA) severity is typically assessed invasively.
- Non-invasive methods like 4D flow MRI offer potential for detailed hemodynamic assessment.
- Accuracy of 4D flow-derived pressures requires validation against established methods.
Purpose of the Study:
- To develop and validate an algorithm (4DF-FEPPE) for estimating relative pressure distributions from 4D flow MRI data.
- To assess the feasibility and accuracy of this non-invasive method for clinical diagnosis of CoA.
- To compare 4D flow-derived pressures with patient-specific fluid-structure interaction (FSI) simulations.
Main Methods:
- Developed the 4DF-FEPPE algorithm to solve the Poisson pressure equation from 4D flow data.
- Utilized patient-specific FSI simulations with boundary conditions derived from 4D flow data for validation.
- Employed Bland-Altman analysis to compare pressure differences between 4DF-FEPPE and FSI results.
Main Results:
- 4DF-FEPPE showed very good agreement with FSI simulations for instantaneous, end-diastolic, and time-averaged pressures.
- Biases were minimal (+0.4 mmHg, -1.1 mmHg, +0.6 mmHg respectively).
- Peak-to-peak and maximum trans-coarctation pressure drops derived from 4DF-FEPPE closely matched FSI results.
Conclusions:
- The 4DF-FEPPE algorithm provides accurate non-invasive estimation of trans-coarctation pressure drops.
- This 4D flow MRI-based method has significant potential for clinical application in CoA diagnosis.
- Validation confirms the reliability of non-invasive pressure estimation using 4D flow MRI.
Abstract:
Severity of aortic coarctation (CoA) is currently assessed by estimating trans-coarctation pressure drops through cardiac catheterization or echocardiography. In principle, more detailed information could be obtained non-invasively based on space- and time-resolved magnetic resonance imaging (4D flow) data. Yet the limitations of this imaging technique require testing the accuracy of 4D flow-derived hemodynamic quantities against other methodologies. With the objective of assessing the feasibility and accuracy of this non-invasive method to support the clinical diagnosis of CoA, we developed an algorithm (4DF-FEPPE) to obtain relative pressure distributions from 4D flow data by solving the Poisson pressure equation. 4DF-FEPPE was tested against results from a patient-specific fluid-structure interaction (FSI) simulation, whose patient-specific boundary conditions were prescribed based on 4D flow data. Since numerical simulations provide noise-free pressure fields on fine spatial and temporal scales, our analysis allowed to assess the uncertainties related to 4D flow noise and limited resolution. 4DF-FEPPE and FSI results were compared on a series of cross-sections along the aorta. Bland-Altman analysis revealed very good agreement between the two methodologies in terms of instantaneous data at peak systole, end-diastole and time-averaged values: biases (means of differences) were +0.4 mmHg, -1.1 mmHg and +0.6 mmHg, respectively. Limits of agreement (2 SD) were ±0.978 mmHg, ±1.06 mmHg and ±1.97 mmHg, respectively. Peak-to-peak and maximum trans-coarctation pressure drops obtained with 4DF-FEPPE differed from FSI results by 0.75 mmHg and -1.34 mmHg respectively. The present study considers important validation aspects of non-invasive pressure difference estimation based on 4D flow MRI, showing the potential of this technology to be more broadly applied to the clinical practice.
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